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In: Proceedings of the 6th European Congress on Intelligent Techniques and Soft Computing, Aachen, Germany, pp. 465–469 (1998)\nBack, T., Schwefel, H.: An overview of evolutionary algorithms for parallel optimization. Evol. Comput. 1(1), 1–23 (1993). doi:10.1162\u002Fevco.1993.1.1.1\nChun, J.-S., Kim, M.-K., Jung, H.-K.: Shape optimization of electromagnetic devices using Immune Algorithm. IEEE Trans. Magn. 33(2), 1876–1879 (1997). doi:10.1109\u002F20.582650\nConceição António, C.A.: A multilevel genetic algorithm for optimization of geometrically non-linear stiffened composite structures. Struct. Multidiscip. Optim. 24, 372–386 (2002). doi:10.1007\u002Fs00158-002-0249-4\nConceição António, C.A.: A hierarchical genetic algorithm with age structure for multimodal optimal design of hybrid composites. Struct. Multidiscip. Optim. 31, 280–294 (2006). doi:10.1007\u002Fs00158-005-0570-9\nConceição António, C.A.: A study on synergy of multiple crossover operators in a hierarchical genetic algorithm applied to structural optimization. Struct. Multidiscip. Optim. (2008a) (in press). doi:10.1007\u002Fs00158-008-0268-x\nConceição António: Carlos, “Self-adaptation in genetic algorithms applied to structural optimization”, EngOpt 2008—International Conference on Engineering Optimization, Rio de Janeiro, Brasil, 1–5 June, 2008, Session: Evolutionary Techniques, Book of abstracts: p. 43, CD edition: Paper nr. 158, (2008b)\nDavis, L.: Adapting operator probabilities in genetic algorithms. In: Proceedings of the 3rd International Conference on Genetic Algorithms, San Mateo CA, USA, pp. 61–60 (1989)\nEiben, A.E., Sprinkhuizen-Kuyper, I.G., Thijssen, B.A.: Competing crossovers in an adaptive GA framework. In: Proceedings of the IEEE Conference on Evolutionary Computation, Anchorage AK, USA, pp. 787–792 (1998)\nGoldberg, D.E.: Genetic algorithms in search, optimization, and machine learning. Addison Wesley, Reading, MA (1989)\nGoldberg, D.E., Deb, K.: A comparative analysis of selection schemes used in genetic algorithms. Found. Genet. Algorithms 1, 69–93 (1991)\nHerrera, F., Lozano, M., Sánchez, A.M.: A taxonomy for the crossover operator for real-coded genetic algorithms. Int. J. Intell. Syst. 18, 309–338 (2003). doi:10.1002\u002Fint.10091\nHolland, J.H.: Adaptation in Natural and Artificial Systems. The University of Michigan Press, Ann Arbor (1975)\nSchaffer, J., Caruana, R., Eshelman, L., Das, R.: A study of control parameters affecting online performance of genetic algorithms for function optimization. In: Proceedings of the 3rd International Conference on Genetic Algorithms, San Mateo CA, pp. 51–60 (1989)\nSpears, W.M., DeJong, S.K.: On the virtues of parameterized uniform crossover. In: Proceedings of the 4th International Conference on Genetic Algorithms, San Mateo CA, USA, pp. 230–236 (1991)\nTuson, A., Ross, P.: Adapting operator settings in genetic algorithms. Evol. Comput. 6, 161–184 (1998). doi:10.1162\u002Fevco.1998.6.2.161\nWolpert, D.H., Macready, W.G.: No free lunch theorems for optimization. IEEE Trans. Evol. Comput. 1, 67–82 (1997). doi:10.1109\u002F4235.585893\nYoon, H.-S., Moon, B.-R.: An empirical study on the synergy of multiple crossover operators. IEEE Trans. Evol. Comput 6, 212–223 (2002). doi:10.1109\u002F4235.996022",{"EN":205},"It is recognized that the efficiency of Genetic Algorithms improves if some adaptive rules are included. In this work, adaptive properties in Genetic Algorithms applied to structural optimization are studied. The adaptive rules work by using additional information related to the behavior of state and design variables of the structural problem. At each generation, the self-adaptation of the genetic parameters to evolutionary conditions attempts to improve the efficiency of the genetic search. The introduction of adaptive rules occurs at three levels: (i) when defining the search domain in each generation; (ii) considering a crossover operator based on commonality and local improvements; and (iii) by controlling mutation, including behavioral data. Self-adaptation has proved to be highly beneficial in automatically and dynamically adjusting evolutionary parameters. Numerical examples showing these benefits are presented.",{"EN":207},"Self-adaptation procedures in genetic algorithms applied to the optimal design of composite structures",{"VOID":209},"10.1007\u002Fs10999-009-9102-x","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10999-009-9102-x",[215],{"id":216,"sortIndex":23,"researcher":22,"roles":217,"affiliations":219,"properties":230},"21ac16ee-532f-497f-8345-9a742120213c",[218],"AUTHOR",[220],{"id":22,"sortIndex":23,"affiliation":221,"properties":22},{"id":222,"createTime":223,"updateTime":224,"relativeEntities":225,"slug":226,"properties":227,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"4b04595d-1817-4086-b252-5facef3f72c4","2024-01-15T17:33:37.042+00:00","2024-08-30T11:52:01.095+00:00",[],"Faculty-of-Engineering-University-of-Porto-Porto-Portugal",{"title":228},{"VI":229},"Faculty of Engineering, University of Porto, Porto, Portugal",{"title":231},{"VI":232},"Carlos Conceição António","ARTICLE",{"url":213,"publisher":235,"properties":264},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":236,"slug":10,"properties":237,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":242,"manageAffiliations":243,"indexDatabases":244,"url":22,"thumbnailPath":22,"statistic":259,"gsStatistic":22,"type":190,"analyzePriority":22},[],{"issn":238,"eissn":239,"title":240,"url":241},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[245,252],{"id":97,"indexDatabase":246,"url":112,"indexYears":22,"academicFieldIds":251,"indexDatabaseRanking":22},{"id":99,"createTime":100,"updateTime":101,"relativeEntities":247,"label":248,"description":249,"key":108,"publicationTags":250,"standard":22},[],{"EN":104,"VI":104},{"VI":106,"EN":107},[110,111],[114,115,116],{"id":76,"indexDatabase":253,"url":89,"indexYears":90,"academicFieldIds":258,"indexDatabaseRanking":95},{"id":78,"createTime":79,"updateTime":80,"relativeEntities":254,"label":255,"description":256,"key":86,"publicationTags":257,"standard":22},[],{"EN":83,"VI":83},{"EN":83,"VI":85},[88],[92,93,94],{"impactFactor":23,"impactFactorByYear":260,"i10Index":131,"i10IndexLast5Year":132,"totalPublication":133,"totalPublicationByYear":261,"totalCitation":149,"totalCitationByYear":262,"totalCitationPerPublication":167,"totalCitationPerPublicationByYear":263,"hindexLast5Year":189,"hindex":189},{"2012":119,"2013":120,"2014":121,"2015":122,"2016":123,"2017":124,"2018":125,"2019":126,"2020":127,"2021":128,"2022":129,"2023":130},{"2004":132,"2005":72,"2006":135,"2007":136,"2008":137,"2009":138,"2010":139,"2011":140,"2012":141,"2013":142,"2014":143,"2015":144,"2016":142,"2017":141,"2018":142,"2019":145,"2020":146,"2021":144,"2022":147,"2023":145,"2024":148},{"2004":140,"2005":151,"2006":152,"2007":144,"2008":142,"2009":153,"2010":154,"2011":155,"2012":156,"2013":157,"2014":158,"2015":159,"2016":160,"2017":161,"2018":162,"2019":163,"2020":164,"2021":165,"2022":141,"2023":72,"2024":166},{"2004":169,"2005":170,"2006":171,"2007":172,"2008":173,"2009":174,"2010":175,"2011":176,"2012":177,"2013":178,"2014":179,"2015":180,"2016":181,"2017":182,"2018":183,"2019":184,"2020":185,"2021":186,"2022":187,"2023":123,"2024":188},{"volume":265,"pages":267},{"VOID":266},"5",{"VOID":268},"289-302","2009-03-17",2009,false,{"id":273,"createTime":274,"updateTime":275,"relativeEntities":276,"slug":277,"properties":278,"entityType":210,"verifyStatus":211,"verifyTime":275,"verifyNote":212,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":287,"fullTextUrl":22,"authors":288,"publicationType":233,"publisherRelationship":357,"citationCount":22,"citationInfo":22,"publishDate":392,"publishYear":393,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":271},"cc4194fa-8164-4abd-866f-df098270a4be","2024-01-18T01:20:49.927+00:00","2024-12-10T23:52:49.438+00:00",[],"Modelling-of-the-mechanical-response-of-Zr-Nb-and-Ti-Nb-alloys-in-a-wide-temperature-range",{"references":279,"abstract":281,"title":283,"doi":285},{"VOID":280},"Abed, F., Voyiadijs, G.Z.: A consistent modified Zerilli–Armstrong flow stress model for BCC and FCC metals for elevated temperatures. Acta Mech. 175, 1–18 (2005)\nBehera, A.N., Chaudhuri, A., Kapoor, R., Chakravartty, J.K., Suwas, S.: High temperature deformation behavior of Nb–1 wt% Zr alloy. Mater. Des. 92, 750–759 (2016)\nBlokhin, D.A., Chernov, V.M., Blokhin, A.I., Demin, N.A., Sipachev, I.V.: Nuclear and physics properties of zirconium alloys E-110 and E-635 under long time neutron irradiation in the VVER-1000 reactor. Adv. Mater. 5, 23–29 (2011)\nBobbili, R., Madhu, V.: Constitutive modeling and fracture behavior of a biomedical Ti–13Nb–13Zr alloy. Mater. Sci. Eng., A 700, 82–91 (2017)\nBonisch, M., Calin, M., Waitz, T., Panigrahi, A., Zehetbauer, M., Gebert, A., Skrotzki, W., Eckert, J.: Thermal stability and phase transformations of martensitic Ti–Nb alloys. Sci. Technol. Adv. Mater. 14, 055004 (2013)\nCao, W.Q., Yu, S.H., Chun, Y.B., Yoo, Y.C., Lee, C.M., Shin, D.H., Hwang, S.K.: Strain path effects on the microstructure evolution and mechanical properties of Zr702. Mater. Sci. Eng. A395, 77–86 (2005)\nChui, P.: Near β-type Zr–Nb–Ti biomedical alloys with high strength and low modulus. Vacuum 143, 54–58 (2017)\nClouet, E., Cottura, M.: Solubility in Zr–Nb alloys from first-principles. Acta Mater. 144, 21–30 (2018)\nDafang, W., Fei, S., Chengxiang, L., Ronghai, M., Chinan, C., Yuewu, W., Liang, H.: Experimental study on mechanical behaviors of Al-alloys under transient aerodynamic heating. Int. J. Mech. Mater. Des. 6, 331–340 (2010)\nDar, U.A., Zhang, W.H., Xu, Y.J.: Numerical implementation of strain rate dependent thermo viscoelastic constitutive relation to simulate the mechanical behavior of PMMA. Int. J. Mech. Mater. Des. 10, 93–107 (2014)\nDuan, Z., Yang, Y., Satoh, Y., Murakami, K., Kano, S., Zhao, Z., Shen, J., Abe, H.: Current status of materials development of nuclear fuel cladding tubes for light water reactors. Nucl. Eng. Des. 316, 131–150 (2017)\nFong, R.W.L.: Anisotropic deformation of Zr–2.5Nb pressure tube material at high temperatures. J. Nucl. Mater. 440, 467–476 (2013)\nGao, C.Y., Zhang, L.C., Yan, H.X.: A new constitutive model for HCP metals. Mater. Sci. Eng. A528, 4445–4452 (2011)\nGuo, D., Zhang, Z., Zhang, G., Li, M., Shi, Y., Ma, T., Zhang, X.: An extraordinary enhancement of strain hardening in fine-grained zirconium. Mater. Sci. Eng. A591, 167–172 (2014)\nHahn, E.N., Meyers, M.A.: Grain-size dependent mechanical behavior of nanocrystalline metals. Mater. Sci. Eng. A646, 101–134 (2015)\nHatt, B.A., Rivlin, V.G.: Phase transformations in superconducting Ti–Nb alloys. J. Phys. D Appl. Phys. 1(9), 1145–1149 (1968)\nHuh, H., Ahn, K., Lim, J.H., Kim, H.W., Park, L.J.: Evaluation of dynamic hardening models for BCC, FCC, and HCP metals at a wide range of strain rates. J. Mater. Process. Technol. 214, 1326–1340 (2014)\nHynowska, A., Pellicer, E., Fornell, J., González, S., van Steenberge, N., Suriñach, S., Gebert, A., Calin, V., Eckert, J., Baró, M.D., Sort, J.: Nanostructured β-phase Ti–31.0Fe–9.0Sn and sub-μm structured Ti–39.3Nb–13.3Zr–10.7Ta alloys for biomedical applications. Microstructure benefits on the mechanical and corrosion performances. Mater. Sci. Eng. C32, 2418–2425 (2012)\nJohnson, G.R., Cook, W.H.: Fracture characteristics of three metals subjected to various strains, strain rates, temperatures and pressures. Eng. Fract. Mech. 21, 31–48 (1985)\nKazakov, D.N., Kozelkov, O.E., Mayorova, A.S.: Dynamic behavior of zirconium alloy E110 under submicrosecond shock-wave loading. EPJ Web Conf. 94, 1–5 (2015)\nLi, J., Weng, G.J.: A micromechanical approach to the stress–strain relations, strain-rate sensitivity and activation volume of nanocrystalline materials. Int. J. Mech. Mater. Des. 9, 141–152 (2013)\nMoffat, D.L., Kattner, U.R.: Stable and metastable Ti–Nb phase diagrams. Metall. Mater. Trans. A 19(10), 2389–2397 (1988)\nMotta, A.T., Yilmazbayhan, A., Gomes da Silva, M., Comstock, R.J., Busby, J., Gartner, E.: Zirconium alloys for supercritical water reactor applications: challenges and possibilities. J. Nucl. Mater. 371, 61–75 (2007)\nNikonov, AYu., Zharmukhambetova, A.M., Skripnyak, N.V., Ponomareva, A.V., Abrikosov, I.A., Barannikova, S.A., Dmitriev, A.I.: Calculation of mechanical properties of BCC Ti–Nb alloys. AIP Conf. Proc. 1683, 020165 (2015)\nRodchenkov, B.S., Semenov, A.N.: High temperature mechanical behavior of Zr–2.5% Nb alloy. Nucl. Eng. Des. 235, 2009–2018 (2005)\nSarkar, A., Chandanshive, S.A., Thota, M.K., Kapoor, R.: High temperature deformation behaviour of Zr-1Nb alloy. J. Alloys Compd. 703, 56–66 (2017)\nSkripnyak, V.A., Skripnyak, E.G.: Mechanical behavior of nanostructured and ultrafine-grained metal alloy under intensive dynamic loading. In: Vakhrushev, A. (ed.) Nanotechnology and Nanomaterials, Chapter 2. IntechOpen, London (2017)\nSkripnyak, N.V., Skripnyak, V.A., Skripnyak, V.V.: Fracture of thin metal sheets with distribution of grain sizes in the layers. In: Papadrakakis, M., Papadopoulos, V., Stefanou, G., Plevris, V. (eds.) ECCOMAS Congress 2016 VII European Congress on Computational Methods in Applied Sciences and Engineering, Crete Island, Greece, 5–10 June 2016, vol. 1, pp. 355–365 (2016)\nSkripnyak, V.A., Skripnyak, N.V., Skripnyak, E.G., Skripnyak, V.V.: Influence of grain size distribution on the mechanical behaviour of light alloys in wide range of strain rates. AIP Conf. Proc. 1793, 110001 (2017)\nTengen, T.B.: The response of the statistics of the cumulative features on grains in nanomaterials to different grain growth phenomena. Int. J. Mech. Mater. Des. 8, 101–112 (2012)\nToyama, T., Matsukawa, Y., Saito, K., Satoh, Y., Abe, H., Shinohara, Y., Nagai, Y.: Microstructural analysis of impurity segregation around β-Nb precipitates in Zr–Nb alloy using positron annihilation spectroscopy and atom probe tomography. Scr. Mater. 108, 156–159 (2015)\nvan Liempt, P., Bos, C., Sietsma, J.: A physically based yield criterion II. Incorporation of Hall Petch effect and resistance due to thermally activated dislocation glide. Mater. Sci. Eng. A 652, 7–13 (2016)\nXiao, D., Li, Y., Hu, S.: High strain rate deformation behavior of zirconium at elevated temperatures. J. Mater. Sci. Technol. 26, 878–882 (2010)\nYang, Y., Wu, S.Q., Li, G.P., Li, Y.L., Lu, Y.F., Yang, K., Ge, P.: Evolution of deformation mechanisms of Ti–22.4 Nb–0.73Ta–2Zr–1.34O alloy during straining. Acta Mater. 58, 2778–2787 (2010)\nZain-ul-abdein, M., Nelias, D.: Effect of coherent and incoherent precipitates upon the stress and strain fields of 6xxx aluminium alloys: a numerical analysis. Int. J. Mech. Mater. Des. 12, 255–271 (2016)\nZerilli, F.J., Armstrong, R.W.: The effect of dislocation drag on the stress–strain behaviour of FCC metals. Acta Metall. Mater. 40, 1803–1808 (1992)\nZhang, W., Cai, Y.: Continuum Damage Mechanics and Numerical Applications. Springer, Heidelberg (2010)",{"EN":282},"This article presents the results of modeling the mechanical behavior of Zr–Nb and Ti–Nb alloys in a range of strain rates from 0.001 to 1000 1\u002Fs and temperature range 297–1273 K. A modification of constitutive equations describing the mechanical response of fine-grained and coarse-grained Zr–1Nb and Ti–13Nb–13Zr alloys in a wide temperature range is proposed. It was shown that the phase transition between the hexagonal closed packed and body-centered cubic crystal structure at elevated temperatures leads to a sharp change in strain rate sensitivity of the yield strength of Zr–Nb and Ti–Nb alloys. The proposed modifications of constitutive equations make it possible to describe the strain hardening and the strain rate sensitivity of the plastic flow stress over a wide temperature range in the coarse-crystalline and ultrafine-grained Zr–Nb and Ti–Nb alloys. The results can be used for engineering analysis of structural elements of technical systems and design of manufacturing technologies for biomedical products.",{"EN":284},"Modelling of the mechanical response of Zr–Nb and Ti–Nb alloys in a wide temperature range",{"VOID":286},"10.1007\u002Fs10999-019-09447-z","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10999-019-09447-z",[289,306,319,344],{"id":290,"sortIndex":23,"researcher":22,"roles":291,"affiliations":292,"properties":303},"92f4f26a-8005-4222-8ef8-055187c9e859",[218],[293],{"id":22,"sortIndex":23,"affiliation":294,"properties":22},{"id":295,"createTime":296,"updateTime":297,"relativeEntities":298,"slug":299,"properties":300,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"18f1600c-bfa2-48b8-86eb-ce7b8cdcf86a","2023-12-24T00:43:29.705+00:00","2024-12-10T23:03:11.246+00:00",[],"National-Research-Tomsk-State-University-Tomsk-Russia",{"title":301},{"VI":302},"National Research Tomsk State University, Tomsk, Russia",{"title":304},{"VI":305},"Vladimir A. 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J. Sound Vib. 320, 438–451 (2009a)\nArora, V., Singh, S.P., Kundra, T.K.: Finite element model updating with damping identification. J. Sound Vib. 324, 1111–1123 (2009b)\nBelforte, G., Raparelli, T., Viktorov, V., Trivella, A., Colombo, F.: An experimental study of high-speed rotor supported by air bearings: test rig and first experimental results. Tribol. Int. 39, 839–845 (2006)\nChen, J.H., Lee, A.C.: Estimation of linearized dynamic characteristics of bearing using synchronous response. Int. J. Mech. Sci. 37, 197–219 (1995)\nDellaCorte, C., Valco, M.: Load capacity estimation of foil air Journal bearing for oil-free turbomachinery applications. STLE Tribol. Trans. 43, 795–801 (2000)\nEdwards, S., Lee, A.W., Friswell, M.I.: Experimental identification of excitation and support parameters of flexible rotor-bearings-foundation system from a single run-down. J. Sound Vib. 232, 963–992 (2002)\nFox, R.L., Kapoor, M.P.: Rates of changes of eigenvalues and eigenvectors. AIAA J. 6, 2426–2429 (1968)\nHeshmat, H., Ku, C.P.: Structural damping of self-acting compliant foil journal bearings. ASME J. Tribol. 116, 76–82 (1994)\nIsomura, K., Tanaka, S., Togo, S., Esashi, M.: Development of high-speed micro-gas bearings for three dimensional micro-turbo machines. J. Micromech. Microeng. 15, 222–227 (2005)\nJiang, P.L., Yu, L.: Identification of the oil-film dynamic coefficients in the rotor-bearing system with a hydrodynamic thrust bearing. J. Sound Vib. 236, 733–740 (2000)\nKim, D., Park, S.: Hydrostatic air-foil bearings: analytical and experimental investigation. Tribol. Int. 42, 413–425 (2009)\nKim, Y.H., Yang, B.S., Tan, A.C.C.: Bearing parameter identification of rotor-bearing system using cluster-based hybrid evolutionary algorithm. Struct. Multi. Option 33, 493–506 (2007)\nKu, C.P.: An experimental and theoretical study of the dynamic structural stiffness in compliant foil journal bearings. In: ASME 14th Biennial Conference on Mechanical Vibration and Noise, Albuquerque, vol. 63, pp. 83–88 (1993)\nKu, C.P., Heshmat, H.: Complaint foil bearing structural stiffness analysis, part II: experimental investigation. ASME J. Tribol. 115, 364–369 (1993)\nKu, C.P., Heshmat, H.: Structural stiffness and coulomb damping in compliant foil journal bearing: theoretical considerations. STLE Tribol. Trans. 37, 525–533 (1994a)\nKu, C.P., Heshmat, H.: Structural stiffness and coulomb damping in compliant foil journal bearing: Parametric studies. STLE Tribol. Trans. 37, 455–462 (1994b)\nLee, C.W., Hong, S.W.: Identification of bearing dynamic coefficients by unbalance response measurements. In: Proceedings of the Institution of Mechanical Engineering Conference, pp. 93–101 (1998)\nModak, S.V., Kundra, T.K., Nakra, B.C.: Comparative study of model updating methods using simulated experimental data. Comput. Struct. 80, 437–447 (2000)\nRubio, D., San Andrés, L.: Bump-type foil bearing structural stiffness: experimentation and predictions. J. Eng. Gas Turbine Power 128, 653–660 (2006)\nSalehi, M., Heshmat, H., Walton, J.: On the frictional damping characterization of compliant bump foils. ASME Trans. 125, 804–813 (2003)\nSan Andrés, L., Kim, T.H.: Forced nonlinear response of gas foil bearing supported rotors. Tribol. Int. 704, 413–715 (2008)\nTiwari, R., Lee, A.W., Friswell, M.I.: Identification of speed-dependent bearing parameters. J. Sound Vib. 254, 967–986 (2002)",{"EN":404},"Air-foil bearings (AFBs) are self acting hydrodynamic bearings made from sheet metal foils comprised of at least two layers. The innermost “top foil” layer traps a gas pressure film that supports a load while the layer or layers underneath provide an elastic foundation. AFBs are currently used in many commercial applications, both terrestrial and in aerospace. AFBs provide a means to eliminate the oil system leading to reduce weight and enhanced temperature capability. Regardless of the application of the AFBs, the identification of the structural characteristics is important for successful design practice. In the present work, structural characteristics (stiffness and damping) of axial AFBs are indentified in the light of experimental results. Due to the initial high torque requirement of the AFB, the experimental setup using a single AFB is proposed instead of standard two-foil bearing setups. Experiments are carried out at maximum speed of 60,000 rpm. Sub-structuring approach is used for identification of the structural (stiffness and damping) characteristics of the AFB. The results have shown that the developed experimental procedure is able to identify the stiffness and damping characteristics of axial AFBs accurately.",{"EN":406},"Identification of stiffness and damping characteristics of axial air-foil bearings",{"VOID":408},"10.1007\u002Fs10999-011-9161-7","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10999-011-9161-7",[411,426,438,453],{"id":412,"sortIndex":308,"researcher":22,"roles":413,"affiliations":414,"properties":423},"b1200016-357b-4486-ab38-119caa3ba723",[218],[415],{"id":22,"sortIndex":23,"affiliation":416,"properties":22},{"id":417,"createTime":418,"updateTime":418,"relativeEntities":419,"slug":22,"properties":420,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"8e763206-c93b-412a-b9e6-9d20d5413866","2024-02-17T18:34:47.460+00:00",[],{"title":421},{"VI":422},"Structural Dynamics and Acoustics, University of Twente, Enschede, The Netherlands",{"title":424},{"VI":425},"P. 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Thin-Walled Struct. 135, 78–88 (2019)",{"doi":1170},"10.1016\u002Fj.tws.2018.10.032",{"id":22,"text":1172,"url":22,"identifiers":1173},"Hong, C.C.: Thermal vibration of magnetostrictive functionally graded material shells with the transverse shear deformation effects. Appl. Appl. Math. Int. J. 11, 127–151 (2016)",{},{"id":22,"text":1175,"url":22,"identifiers":1176},"Hong, C.C.: Thermal vibration of magnetostrictive functionally graded material shells by considering the varied effects of shear correction coefficient. Int. J. Mech. Sci. 85, 20–29 (2014)",{"doi":1177},"10.1016\u002Fj.ijmecsci.2014.04.013",{"id":22,"text":1179,"url":22,"identifiers":1180},"Huang, H., Zou, M.S., Jiang, L.W.: Study on the integrated calculation method of fluid–structure interaction vibration, acoustic radiation, and propagation from an elastic spherical shell in ocean acoustic environments. Ocean Eng. 177, 29–39 (2019)",{"doi":1181},"10.1016\u002Fj.oceaneng.2019.02.032",{"id":22,"text":1183,"url":22,"identifiers":1184},"Kareem, M.G., Majeed, W.I.: Transient dynamic analysis of laminated shallow spherical shell under low-velocity impact. J. Mater. Res. Technol. (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jmrt.2019.08.050",{"doi":1185},"10.1016\u002Fj.jmrt.2019.08.050",{"id":22,"text":1187,"url":22,"identifiers":1188},"Lee, S.J., Reddy, J.N.: Non-linear response of laminated composite plates under thermomechanical loading. Int. J. Non-linear Mech. 40, 971–985 (2005)",{"doi":1189},"10.1016\u002Fj.ijnonlinmec.2004.11.003",{"id":22,"text":1191,"url":22,"identifiers":1192},"Lee, S.J., Reddy, J.N., Rostam-Abadi, F.: Transient analysis of laminated composite plates with embedded smart-material layers. Finite Elem. Anal. Des. 40, 463–483 (2004)",{"doi":1193},"10.1016\u002FS0168-874X(03)00073-8",{"id":22,"text":1195,"url":22,"identifiers":1196},"Mao, Y.Q., Fu, Y.M., Chen, C.P., Li, Y.L.: Nonlinear dynamic response for functionally graded shallow spherical shell under low velocity impact in thermal environment. Appl. Math. Model. 35, 2887–2900 (2011)",{"doi":1197},"10.1016\u002Fj.apm.2010.12.012",{"id":22,"text":1199,"url":22,"identifiers":1200},"Reddy, J.N.: Energy Principles and Variational Methods in Applied Mechanics. Wiley, New York (2002)",{},{"id":22,"text":1202,"url":22,"identifiers":1203},"Sahan, M.F.: Dynamic analysis of linear viscoelastic cross-ply laminated shallow spherical shells. Compos. Struct. 149, 261–270 (2016)",{"doi":1204},"10.1016\u002Fj.compstruct.2016.04.045",{"id":22,"text":1206,"url":22,"identifiers":1207},"Sayyad, A.S., Ghugal, Y.M.: Static and free vibration analysis of laminated composite and sandwich spherical shells using a generalized higher-order shell theory. Compos. Struct. 219, 129–146 (2019)",{"doi":1208},"10.1016\u002Fj.compstruct.2019.03.054",{"id":22,"text":1210,"url":22,"identifiers":1211},"Sepiani, H.A., Rastgoo, A., Ebrahimi, F., Arani, A.G.: Vibration and buckling analysis of two-layered functionally graded cylindrical shell considering the effects of transverse shear and rotary inertia. Mater. Des. 31, 1063–1069 (2010)",{"doi":1212},"10.1016\u002Fj.matdes.2009.09.052",{"id":22,"text":1214,"url":22,"identifiers":1215},"Shu, C., Du, H.: Implementation of clamped and simply supported boundary conditions in the GDQ free vibration analyses of beams and plates. Int. J. Solids Struct. 34, 819–835 (1997)",{"doi":1216},"10.1016\u002FS0020-7683(96)00057-1",{"id":22,"text":1218,"url":22,"identifiers":1219},"Stampouloglou, I.H., Theotokoglou, E.E.: The radially inhomogeneous isotropic elastic equal thickness spherical shell. Compos. Part B 154, 374–381 (2018)",{"doi":1220},"10.1016\u002Fj.compositesb.2018.08.098",{"id":22,"text":1222,"url":22,"identifiers":1223},"Venås, J.V., Jenserud, T.: Exact 3D scattering solutions for spherical symmetric scatterers. J. Sound Vib. 440, 439–479 (2019)",{"doi":1224},"10.1016\u002Fj.jsv.2017.08.006",{"id":22,"text":1226,"url":22,"identifiers":1227},"Whitney, J.M.: Structural analysis of laminated anisotropic plates. Technomic Publishinsg Company, Inc., Lancaster, Pennsylvania, USA (1987)",{},{"id":1229,"createTime":1230,"updateTime":1231,"relativeEntities":1232,"slug":1233,"properties":1234,"entityType":210,"verifyStatus":211,"verifyTime":1231,"verifyNote":212,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1243,"fullTextUrl":22,"authors":1244,"publicationType":233,"publisherRelationship":1284,"citationCount":22,"citationInfo":22,"publishDate":1318,"publishYear":504,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":271},"093338e4-36d3-4ef5-a4ff-97c2604e66fd","2024-01-12T00:02:38.885+00:00","2025-01-30T23:33:23.370+00:00",[],"The-effect-of-the-horizontal-vibrations-on-natural-heat-transfer-from-an-isothermal-array-of-cylinders",{"references":1235,"abstract":1237,"title":1239,"doi":1241},{"VOID":1236},"Baxi, C.B., Ramachandran, A.: Effect of vibration on heat transfer from spheres. J. Heat Transf. 91, 337–343 (1969)\nBelytschko, T., Flanagan, D.F., Kennedy, J.M.: Finite element method with user-controlled meshes for fluid–structure interactions. Comput. Methods Appl. Mech. Eng. 33, 689–723 (1982)\nCheng, C.H., Hong, J.L., Aung, W.: Numerical prediction of lock-on effect on convective heat transfer from a transversely oscillating circular cylinder. Int. J. Heat and Mass Transf. 40, 1825–1834 (1997a)\nCheng, C.H., Chen, H.N., Aung, W.: Experimental study of the effect of transverse oscillation on convection heat transfer from a circular cylinder. J. Heat Transf. 119, 474–482 (1997b)\nChouikh, R., Guizani, A., Maalej, M.: Numerical study of laminar natural convection flow around horizontal isothermal cylinder. Renew. Energy 13(1), 77–88 (1998)\nCorcione, Massimo: Correlating equations for free convection heat transfer from horizontal isothermal cylinders set in a vertical array. Int. J. Heat and Mass Transf. 48, 3660–3673 (2005)\nDonea, J., Giuliani, S., Halleux, J.P.: An arbitrary Lagrangian–Eulerian finite element method for transient dynamic fluid-structure interactions. Comput. Methods Appl. Mech. Eng. 33, 689–723 (1982)\nForbes, R.E., Carley, C.T., Bell, C.J.: Vibration effects on convective heat transfer in enclosure. ASME J. Heat Transf. 92, 429–438 (1970)\nFu, W.S., Shieh, W.J.: A study of thermal convection in an enclosure induced simultaneously by gravity and vibration. Int. J. Heat Mass Transf. 35, 1695–1710 (1992)\nFu, W.S., Shieh, W.J.: Transient thermal convection in an enclosure induced simultaneously by gravity and vibration. Int. J. Heat Mass Transf. 36, 437–452 (1993)\nFu, W.S., Tong, B.H.: Numerical investigation of heat transfer from a heated oscillating cylinder in a cross flow. Int. J. Heat Mass Transf. 45, 3033–3043 (2002)\nGau, C., Wu, J.M., Liang, C.Y.: Heat transfer enhancement and vortex flow structure over a heated cylinder oscillating in the cross flow direction. J. Heat Transf. 121, 789–795 (1999)\nHirt, C.W., Amsden, A.A., Cooks, H.K.: An arbitrary Lagrangian–Eulerian computing method for all flow speeds. J. Comput. Phys. 14, 227–253 (1974)\nHossain, M.A., Kutubuddin, M., Pop, I.: Radiation–conduction interaction on mixed convection a horizontal circular cylinder. Heat and Mass Transf. 35, 307–314 (1999)\nHuerta, A., Liu, W.K.: Viscous flows for large free surface motion. Comput. Methods Appl. Mech. Eng. 69, 277–324 (1988)\nHughes, T.J.R., Liu, W.K., Zimmerman, T.K.: Lagrangian–Eulerian finite element formulation for viscous flows. Comput. Methods Appl. Mech. Eng. 29, 329–349 (1981a)\nHughes, T.J.R., Liu, W.K., Zimmermann, T.K.: Lagrangian–Eulerian finite element formulation for incompressible viscous flows. Comput. Methods Appl. Mech. Eng. 29, 329–349 (1981b)\nIchioka, T., Kawata, Y., Nakamura, T., Izumi, H., Kobayashi, T., Takamatsu, H.: Reasearch on fluid elastic vibration of cylinder arrays by computational fluid dynamics (analysis of two cylinders and a cylinder row). Jpn. Soc. Mech. Eng. 40, 16–24 (1997)\nKuehn, T.H., Goldstein, R.J.: Numerical solution to the Navier–Stokes equations for laminar natural convection about a horizontal isothermal circular cylinder. Int. J. Heat Mass Transf. 23, 971–979 (1980)\nLeung, C.T., Ko, N.W.M., Ma, K.H.: Heat transfer from a vibrating cylinder. J. Sound Vib. 75(4), 581–582 (1981)\nLin, Tsun-kuo, Yu, Ming-huei: An experimental study on the cross-flow vibration of a flexible cylinder in cylinder arrays. Exp. Therm. Fluid Sci. 29, 523–536 (2005)\nMahfouz, F.M., Badr, H.M.: Forced convection from a rotationally oscillating cylinder placed in a uniform stream. Int. J. Heat and Mass Transf. 43, 3093–3104 (2000)\nMendez, F., Trevino, C.: The conjugate conduction-natural convection heat transfer along a thin vertical plate with non-uniform internal heat generation. Int. J. Heat Mass Transfer. 43, 2739–2748 (2000)\nMolla, M.M., Hossain, M.A., Yao, L.S.: Natural convection flow along a vertical wavy surface with heat generation\u002Fabsorption. Int. J. Therm. Sci. 43, 157–163 (2004)\nMolla, M.M., Hossain, M.A., Gorla, R.S.R.: Natural convection flow from an isothermal horizontal circular cylinder with temperature dependent viscosity. Heat and Mass Transf. 41, 594–598 (2005)\nNithiarasu, P., Liu, C.B.: An artificial compressibility based characteristic based split (CBS) scheme for steady and unsteady turbulent incompressible flows. Comput. Methods Appl. Mech. Eng. 195, 2961–2982 (2006)\nPonta, F.L., Aref, H.: Numerical experiments on vortex shedding from an oscillating cylinder. J. Fluids Struct. 22, 327–344 (2006)\nPop, I., Nazar, R., Amin, N.: Free convection boundary layer on a horizontal circular cylinder wit constant heat flux in a micropolar fluid. Int. J. Appl. Mech. Eng. 7(2), 409–431 (2002a)\nPop, I., Grosan, T., Amin, N., Nazar, R.: Free convection boundary layer on an isothermal sphere in a micropolar fluid. Int. Commun. Heat Mass Transf. 29(3), 377–386 (2002b)\nPop, I., Nazar, R., Amin, N.: Free convection boundary layer on an isothermal horizontal circular cylinder in a micropolar fluid. Int. J. Eng. Sci. 44, 949–958 (2006)\nRamaswamy, B.: Numerical simulation of unsteady viscous free surface flow. J. Comput. Phys. 90, 396–430 (1990)\nSaitoh, T., Sajiki, T., Maruhara, K.: Bench mark solutions to natural convection heat transfer problem around a horizontal circular cylinder. Int. J. Heat Mass Transf. 36, 1251–1259 (1993)\nShokouhmand, H., Abadi, S.M.A.N.: Finite element analysis of natural heat transfer from an isothermal array of cylinders in presence of vertical oscillations. Heat Mass Transf. 46, 891–902 (2010)\nWang, P., Kahawita, R., Nguyen, T.H.: Numerical computation of the natural convection flow about a horizontal cylinder using splines. Numer. Heat Transf. 17, 191–215 (1990)",{"EN":1238},"A numerical investigation is carried out to study an unsteady laminar natural convection heat transfer caused by an array of isothermal oscillating circular cylinders. Under oscillating conditions, flow and thermal fields are categorized into a class of moving boundary problems. In this study, the moving interfaces between the fluid and cylinders have been considered. The numerical model used in the present paper, is based on a 2D Navier–Stokes momentum and energy equations for an incompressible flow solver on an unstructured grid. Discretization of the governing equations including continuity, momentum and energy equations is achieved through a finite element scheme based on characteristic based split algorithm using the arbitrary Lagrangian–Eulerian approach to satisfy boundary movement. Besides a dual time stepping method is employed to capture unsteady flow and thermal characteristics. The working fluid is designated a Prandtl number of 0.71(air) and assumed to be incompressible with constant physical properties. The radiation, viscous dissipation and pressure work are also assumed to be negligible throughout this investigation. Fluid flow and heat transfer characteristics are examined in the domain of the Rayleigh number, cylinders spacing, amplitude, and frequency of oscillations such that: 103 ≤ Ra ≤ 105, 2 ≤ s\u002Fd ≤ 4, 0.5 ≤ l ≤ 2, and 0.1 ≤ f ≤ 0.4. The obtained results reveal that increment of Rayleigh number and cylinders’ spacing augment the average Nusselt of each cylinder as well as higher oscillation amplitude and frequency. Moreover, it was found that horizontal vibration makes vortices appear in the left and right area of the cylinders. These vortices reduce heat transfer from two upper cylinders.",{"EN":1240},"The effect of the horizontal vibrations on natural heat transfer from an isothermal array of cylinders",{"VOID":1242},"10.1007\u002Fs10999-011-9170-6","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10999-011-9170-6",[1245,1260,1272],{"id":1246,"sortIndex":23,"researcher":22,"roles":1247,"affiliations":1248,"properties":1257},"3408f755-7a7d-432b-a513-ef3104593c52",[218],[1249],{"id":22,"sortIndex":23,"affiliation":1250,"properties":22},{"id":1251,"createTime":1252,"updateTime":1252,"relativeEntities":1253,"slug":22,"properties":1254,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"28c6930d-4f75-48f5-954b-77d5f6736461","2023-12-19T20:32:56.416+00:00",[],{"title":1255},{"VI":1256},"Department of Mechanical Engineering, University of Tehran, Tehran, Iran",{"title":1258},{"VI":1259},"H. Shokouhmand",{"id":1261,"sortIndex":308,"researcher":22,"roles":1262,"affiliations":1263,"properties":1269},"0490fa0d-119a-44b3-ad66-3704c600271f",[218],[1264],{"id":22,"sortIndex":23,"affiliation":1265,"properties":22},{"id":1251,"createTime":1252,"updateTime":1252,"relativeEntities":1266,"slug":22,"properties":1267,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1268},{"VI":1256},{"title":1270},{"VI":1271},"S. M. A. Noori Rahim Abadi",{"id":1273,"sortIndex":346,"researcher":22,"roles":1274,"affiliations":1275,"properties":1281},"9fdb16ba-8b69-494f-bf8f-d55c9c262bfa",[218],[1276],{"id":22,"sortIndex":23,"affiliation":1277,"properties":22},{"id":1251,"createTime":1252,"updateTime":1252,"relativeEntities":1278,"slug":22,"properties":1279,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},[],{"title":1280},{"VI":1256},{"title":1282},{"VI":1283},"A. Jafari",{"url":1243,"publisher":1285,"properties":1314},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1286,"slug":10,"properties":1287,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1292,"manageAffiliations":1293,"indexDatabases":1294,"url":22,"thumbnailPath":22,"statistic":1309,"gsStatistic":22,"type":190,"analyzePriority":22},[],{"issn":1288,"eissn":1289,"title":1290,"url":1291},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},[],[],[1295,1302],{"id":97,"indexDatabase":1296,"url":112,"indexYears":22,"academicFieldIds":1301,"indexDatabaseRanking":22},{"id":99,"createTime":100,"updateTime":101,"relativeEntities":1297,"label":1298,"description":1299,"key":108,"publicationTags":1300,"standard":22},[],{"EN":104,"VI":104},{"VI":106,"EN":107},[110,111],[114,115,116],{"id":76,"indexDatabase":1303,"url":89,"indexYears":90,"academicFieldIds":1308,"indexDatabaseRanking":95},{"id":78,"createTime":79,"updateTime":80,"relativeEntities":1304,"label":1305,"description":1306,"key":86,"publicationTags":1307,"standard":22},[],{"EN":83,"VI":83},{"EN":83,"VI":85},[88],[92,93,94],{"impactFactor":23,"impactFactorByYear":1310,"i10Index":131,"i10IndexLast5Year":132,"totalPublication":133,"totalPublicationByYear":1311,"totalCitation":149,"totalCitationByYear":1312,"totalCitationPerPublication":167,"totalCitationPerPublicationByYear":1313,"hindexLast5Year":189,"hindex":189},{"2012":119,"2013":120,"2014":121,"2015":122,"2016":123,"2017":124,"2018":125,"2019":126,"2020":127,"2021":128,"2022":129,"2023":130},{"2004":132,"2005":72,"2006":135,"2007":136,"2008":137,"2009":138,"2010":139,"2011":140,"2012":141,"2013":142,"2014":143,"2015":144,"2016":142,"2017":141,"2018":142,"2019":145,"2020":146,"2021":144,"2022":147,"2023":145,"2024":148},{"2004":140,"2005":151,"2006":152,"2007":144,"2008":142,"2009":153,"2010":154,"2011":155,"2012":156,"2013":157,"2014":158,"2015":159,"2016":160,"2017":161,"2018":162,"2019":163,"2020":164,"2021":165,"2022":141,"2023":72,"2024":166},{"2004":169,"2005":170,"2006":171,"2007":172,"2008":173,"2009":174,"2010":175,"2011":176,"2012":177,"2013":178,"2014":179,"2015":180,"2016":181,"2017":182,"2018":183,"2019":184,"2020":185,"2021":186,"2022":187,"2023":123,"2024":188},{"volume":1315,"pages":1316},{"VOID":500},{"VOID":1317},"313-326","2011-08-14",{"id":1320,"createTime":1321,"updateTime":1322,"relativeEntities":1323,"slug":1324,"properties":1325,"entityType":210,"verifyStatus":211,"verifyTime":1322,"verifyNote":212,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1334,"fullTextUrl":22,"authors":1335,"publicationType":233,"publisherRelationship":1387,"citationCount":22,"citationInfo":22,"publishDate":1422,"publishYear":1423,"citationAnalyzeStatus":21,"lastCitationAnalyze":22,"indexDatabases":22,"openAccess":22,"references":22,"isForceReanalyzing":271},"a270cd21-1eb0-4942-902b-b43c216733c4","2023-12-06T15:52:06.673+00:00","2024-12-26T23:31:25.982+00:00",[],"A-new-approach-on-vibration-analysis-of-locally-nonlinear-stiffness-and-damping-system",{"references":1326,"abstract":1328,"title":1330,"doi":1332},{"VOID":1327},"Allen, R.L., Mills, D.W.: Signal analysis: time, frequency, scale, and structure. IEEE Press, NJ (2004)\nChen L., Wu Z.: Averaging method for analyzing a multi-degrees-of-freedom nonlinear oscillation. J. Vib. Shock 21, 63–64 (2002)\nChiang, I.F., Noah, S.T.: A convolution approach for the transient analysis of locally nonlinear rotor systems. J. Appl. Mech. 57, 731–737 (1990)\nDimitriadis, G., Cooper, J.E.: A time–frequency technique for the stability analysis of impulse responses from nonlinear aeroelastic systems. J. Fluid Struct. 17, 1181–1201 (2003)\nElbeyli, O., Sun, JQ., Unal, G.: A semi-discretization method for delayed stochastic systems. Commun. Nonlinear Sci. Numer. Simul. 10, 85–94 (2004)\nHagedorn, P., Schramm, W.: On the dynamics of large systems with locally nonlinearities. J. Appl. Mech. 55, 946–951 (1988)\nIwata, Y., Sato, H., Komatsuzaki, T.: Analytical method for steady state vibration of system with locally non-linearities using convolution integral and Galerkin method. J. Sound Vib. 262, 11–23 (2003)\nLi, J., Wang, Z.: Stability analysis of nonlinear vibrations of a deploying flexible beam. Commun. Nonlinear Sci. Numer. Simul. 1(4), 30–33 (1996)\nNayfeh, A.H., Mook, D.T.: Nonlinear oscillations. John Wiley and Sons, New York (1979)\nShi H.: Vibrating systems – analysis, testing, modeling, controlling. Huazhong University of Science & Technology press, Wuhan (2004)",{"EN":1329},"The nonlinear force induced by spring and damping of 2-degree-of-freedom locally nonlinear vibrating system is regarded as applied force, and its mathematical model is established in this paper. Then impulse response temporal method of linear vibrating system is applied in the system, the response of locally nonlinear vibrating system is obtained by convolution integration between unit impulse response of corresponding linear system and equivalent nonlinear force, and numerical simulation of the model is attained. Finally, the feasibility of the new method on the domain of locally nonlinear vibrating system is verified by comparing the results, which supplies a new method to solve approximately vibration response of locally nonlinear vibrating systems.",{"EN":1331},"A new approach on vibration analysis of locally nonlinear stiffness and damping system",{"VOID":1333},"10.1007\u002Fs10999-006-9008-9","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10999-006-9008-9",[1336,1351,1363,1375],{"id":1337,"sortIndex":23,"researcher":22,"roles":1338,"affiliations":1339,"properties":1348},"0c47fb81-8abc-4044-9dc4-dab7525941ac",[218],[1340],{"id":22,"sortIndex":23,"affiliation":1341,"properties":22},{"id":1342,"createTime":1343,"updateTime":1343,"relativeEntities":1344,"slug":22,"properties":1345,"entityType":59,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"syncStatus":21,"languages":22,"translateLanguages":22,"viewCount":23},"ee0256ec-1108-4615-8d94-0c9e9880d5ed","2023-12-06T15:52:06.710+00:00",[],{"title":1346},{"VI":1347},"School of Mechanical Science & Engineering, Huazhong University of Science & Technology, Wuhan, P.R. 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A.A., Ashry, M., Alshorbagy, A.E., Abdallah, W.S.: On the mechanical behavior of two directional symmetrical functionally graded beams under moving load. Int. J. Mech. Mater. Des. 17, 563–586 (2021). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10999-021-09547-9",{"doi":1730},"10.1007\u002Fs10999-021-09547-9",{"id":22,"text":1732,"url":22,"identifiers":1733},"Akgöz, B., Civalek, Ö.: Buckling analysis of functionally graded tapered microbeams via Rayleigh-Ritz method. Mathematics. (2022). https:\u002F\u002Fdoi.org\u002F10.3390\u002Fmath10234429",{"doi":1734},"10.3390\u002Fmath10234429",{"id":22,"text":1736,"url":22,"identifiers":1737},"Apedo, K.L., Ronel, S., Jacquelin, E., Massenzio, M., Bennani, A.: Theoretical analysis of inflatable beams made from orthotropic fabric. Thin-Wall. Struct. (2009). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2009.06.003",{"doi":1738},"10.1016\u002Fj.tws.2009.06.003",{"id":22,"text":1740,"url":22,"identifiers":1741},"Apedo, K.L., Ronel, S., Jacquelin, E., Bennani, A., Massenzio, M.: Nonlinear finite element analysis of inflatable beams made from orthotropic woven fabric. Int. J. Solids Struct. (2010). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ijsolstr.2010.03.030",{"doi":1742},"10.1016\u002Fj.ijsolstr.2010.03.030",{"id":22,"text":1744,"url":22,"identifiers":1745},"Apedo, K.L., Ronel, S., Jacquelin, E., Tiem, S.: Free vibration analysis of inflatable beam made of orthotropic woven fabric. Thin-Wall. Struct. 78, 1–15 (2014)",{"doi":1746},"10.1016\u002Fj.tws.2013.12.004",{"id":22,"text":1748,"url":22,"identifiers":1749},"Civalek, Ö., Uzun, B., Yaylı, M.Ö., Akgöz, B.: Size-dependent transverse and longitudinal vibrations of embedded carbon and silica carbide nanotubes by nonlocal finite element method. Eur. Phys. J. plus (2020). https:\u002F\u002Fdoi.org\u002F10.1140\u002Fepjp\u002Fs13360-020-00385-w",{"doi":1750},"10.1140\u002Fepjp\u002Fs13360-020-00385-w",{"id":22,"text":1752,"url":22,"identifiers":1753},"Civalek, Ö., Uzun, B., Yaylı, M.Ö.: An effective analytical method for buckling solutions of a restrained FGM nonlocal beam. Comput. Appl. Math. (2022). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs40314-022-01761-1",{"doi":1754},"10.1007\u002Fs40314-022-01761-1",{"id":22,"text":1756,"url":22,"identifiers":1757},"Clapp, J.D., Davids, W.G., Goupee, A.J., Young, A.C.: Experimental determination of inflatable, braided tube constitutive properties. Strain (2016). https:\u002F\u002Fdoi.org\u002F10.1111\u002Fstr.12175",{"doi":1758},"10.1111\u002Fstr.12175",{"id":22,"text":1760,"url":22,"identifiers":1761},"Comer, R.L., Levy, S.: Deflections of an inflated circular-cylindrical cantilever beam. AIAA J. (1963). https:\u002F\u002Fdoi.org\u002F10.2514\u002F3.1873",{"doi":1762},"10.2514\u002F3.1873",{"id":22,"text":1764,"url":22,"identifiers":1765},"Davids, W.G.: In-plane load-deflection behavior and buckling of pressurized fabric arches. J. Struct. Eng. (2009). https:\u002F\u002Fdoi.org\u002F10.1061\u002F(asce)st.1943-541x.0000068",{"doi":1766},"10.1061\u002F(asce)st.1943-541x.0000068",{"id":22,"text":1768,"url":22,"identifiers":1769},"Davids, W.G., Waugh, E., Vel, S.: Experimental and computational assessment of the bending behavior of inflatable drop-stitch fabric panels. Thin-Wall. Struct. (2021). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2021.108178",{"doi":1770},"10.1016\u002Fj.tws.2021.108178",{"id":22,"text":1772,"url":22,"identifiers":1773},"Elsabbagh, A.: Nonlinear finite element model for the analysis of axisymmetric inflatable beams. Thin-Wall. Struct. (2015). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2015.08.021",{"doi":1774},"10.1016\u002Fj.tws.2015.08.021",{"id":22,"text":1776,"url":22,"identifiers":1777},"Fichter, W.B.: A theory for inflated thin-wall cylindrical beams. Computer and Structures. 3 (1966)",{},{"id":22,"text":1779,"url":22,"identifiers":1780},"Ji, Q.X., Wang, C.G., Tan, H.F.: Multi-scale wrinkling analysis of the inflated beam under bending. Int. J. Mech. Sci. (2017). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ijmecsci.2017.03.006",{"doi":1781},"10.1016\u002Fj.ijmecsci.2017.03.006",{"id":22,"text":1783,"url":22,"identifiers":1784},"Kabche, J.P., Peterson, M.L., Davids, W.G.: Effect of inflation pressure on the constitutive response of coated woven fabrics used in airbeams. Compos. B Eng. (2011). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.compositesb.2010.11.007",{"doi":1785},"10.1016\u002Fj.compositesb.2010.11.007",{"id":22,"text":1787,"url":22,"identifiers":1788},"Le Van, A., Wielgosz, C.: Finite element formulation for inflatable beams. Thin-Wall. Struct. (2007). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2007.01.015",{"doi":1789},"10.1016\u002Fj.tws.2007.01.015",{"id":22,"text":1791,"url":22,"identifiers":1792},"Liu, Y.P., Wang, C.G., Tan, H.F., Wadee, M.K.: The interactive bending wrinkling behaviour of inflated beams. Proc. R. Soc. a: Math. Phys. Eng. Sci. (2016). https:\u002F\u002Fdoi.org\u002F10.1098\u002Frspa.2016.0504",{"doi":1793},"10.1098\u002Frspa.2016.0504",{"id":22,"text":1795,"url":22,"identifiers":1796},"Main, J.A., Peterson, S.W., Strauss, A.M.: Load-deflection behavior of space-based inflatable fabric beams. J. Aerosp. Eng. (1994). https:\u002F\u002Fdoi.org\u002F10.1061\u002F(asce)0893-1321(1994)7:2(225)",{"doi":1797},"10.1061\u002F(asce)0893-1321(1994)7:2(225)",{"id":22,"text":1799,"url":22,"identifiers":1800},"Main, J.A., Peterson, S.W., Strauss, A.M.: Beam-type bending of space-based inflated membrane structures. J. Aerosp. Eng. (1995). https:\u002F\u002Fdoi.org\u002F10.1061\u002F(asce)0893-1321(1995)8:2(120)",{"doi":1801},"10.1061\u002F(asce)0893-1321(1995)8:2(120)",{"id":22,"text":1803,"url":22,"identifiers":1804},"Nguyen, Q.T., Thomas, J.C., Le Van, A.: Inflation and bending of an orthotropic inflatable beam. Thin-Wall. Struct. (2015). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2014.11.015",{"doi":1805},"10.1016\u002Fj.tws.2014.11.015",{"id":22,"text":1807,"url":22,"identifiers":1808},"Numanoğlu, H.M., Ersoy, H., Akgöz, B., Civalek, Ö.: A new eigenvalue problem solver for thermo-mechanical vibration of Timoshenko nanobeams by an innovative nonlocal finite element method. Math. Methods Appl Sci. (2022). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fmma.7942",{"doi":1809},"10.1002\u002Fmma.7942",{"id":22,"text":1811,"url":22,"identifiers":1812},"Sun, C.L., Hu, H., Jiang, X.Q.: Inflatable slide-type marine rescue and evacuation system based on beam-truss structures. In: The 6th International Conference on Transportation Information and Safety (ICTIS), Wuhan, China (2021)",{"doi":1813},"10.1109\u002FICTIS54573.2021.9798472",{"id":22,"text":1815,"url":22,"identifiers":1816},"Thomas, J.-C., Bloch, A.: Nonlinear behaviour of an inflatable beam and limit states. Procedia Eng. 155, 398–406 (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.proeng.2016.08.043",{"doi":1817},"10.1016\u002Fj.proeng.2016.08.043",{"id":22,"text":1819,"url":22,"identifiers":1820},"Thomas, J.-C., Le Van, A.: Deflections of pneumatic masts and columns. Archit. Eng. Des. Manag. 17, 299–315 (2021)",{},{"id":22,"text":1822,"url":22,"identifiers":1823},"Thomas, J.C., Wielgosz, C.: Deflections of highly inflated fabric tubes. Thin-Wall. Struct. (2004). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2004.03.007",{"doi":1824},"10.1016\u002Fj.tws.2004.03.007",{"id":22,"text":1826,"url":22,"identifiers":1827},"Thomas, J.C., Schoefs, F., Caprani, C., Rocher, B.: Reliability of inflatable structures: challenge and first results. Eur. J. Environ. Civ. Eng. (2020). https:\u002F\u002Fdoi.org\u002F10.1080\u002F19648189.2018.1474807",{"doi":1828},"10.1080\u002F19648189.2018.1474807",{"id":22,"text":1830,"url":22,"identifiers":1831},"Veldman, S.L.: Wrinkling prediction of cylindrical and conical inflated cantilever beams under torsion and bending. Thin-Wall. Struct. 44, 211–215 (2006). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2006.01.003",{"doi":1832},"10.1016\u002Fj.tws.2006.01.003",{"id":22,"text":1834,"url":22,"identifiers":1835},"Veldman, S.L., Bergsma, O.K., Beukers, A.: Bending of anisotropic inflated cylindrical beams. Thin-Wall. Struct. 43, 461–475 (2005a). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2004.07.015",{"doi":1836},"10.1016\u002Fj.tws.2004.07.015",{"id":22,"text":1838,"url":22,"identifiers":1839},"Veldman, S.L., Bergsma, O.K., Beukers, A., Drechsler, K.: Bending and optimisation of an inflated braided beam. Thin-Wall. Struct. (2005b). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2005.06.004",{"doi":1840},"10.1016\u002Fj.tws.2005.06.004",{"id":22,"text":1842,"url":22,"identifiers":1843},"Wang, C.G., Du, Z.Y., Tan, H.F.: Initial wrinkling and its evolution of membrane inflated cone in bending. Thin-Wall. Struct. (2012). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tws.2012.05.007",{"doi":1844},"10.1016\u002Fj.tws.2012.05.007",{"id":22,"text":1846,"url":22,"identifiers":1847},"Wei, J., Ding, H., Chai, Y., Eriksson, A., Tan, H.: Quasi-static folding and deployment of rigidizable inflatable beams. Int J Solids Struct. (2021). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ijsolstr.2021.111063",{"doi":1848},"10.1016\u002Fj.ijsolstr.2021.111063",{"id":22,"text":1850,"url":22,"identifiers":1851},"Wielgosz, C.: Bending and buckling of inflatable beams: some new theoretical results. Thin-Wall. Struct. 43, 1166–1187 (2005)",{"doi":1852},"10.1016\u002Fj.tws.2005.03.005"]